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Designing and testing new preheat protocols for MagLIF

Harvey-Thompson, Adam J.; Geissel, Matthias; Weis, Matthew R.; Peterson, K.J.; Glinsky, Michael E.; Awe, Thomas J.; Bliss, David E.; Gomez, Matthew R.; Harding, Eric H.; Hansen, Stephanie B.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Porter, John L.; Rochau, G.A.; Schollmeier, Marius; Schwarz, Jens; Shores, Jonathon; Slutz, Stephen A.; Sinars, Daniel; Smith, Ian C.; Speas, Christopher S.

Abstract not provided.

MagLIF laser preheat update

Harvey-Thompson, Adam J.; Geissel, Matthias; Weis, Matthew R.; Jennings, Christopher A.; Glinsky, Michael E.; Peterson, K.J.; Awe, Thomas J.; Bliss, David E.; Gomez, Matthew R.; Harding, Eric H.; Hansen, Stephanie B.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Schollmeier, Marius; Schwarz, Jens; Sefkow, Adam B.; Shores, Jonathon; Slutz, Stephen A.; Sinars, Daniel; Smith, Ian C.; Speas, Christopher S.; Wei, M.S.; Vesey, Roger A.; Porter, John L.

Abstract not provided.

Designing And Testing New MagLIF Preheat Protocols

Harvey-Thompson, Adam J.; Geissel, Matthias; Weis, Matthew R.; Jennings, Christopher A.; Glinsky, Michael E.; Peterson, K.J.; Awe, Thomas J.; Bliss, David E.; Gomez, Matthew R.; Harding, Eric H.; Hansen, Stephanie B.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Porter, John L.; Rambo, Patrick K.; Rochau, G.A.; Schollmeier, Marius; Schwarz, Jens; Shores, Jonathon; Slutz, Stephen A.; Sinars, Daniel; Smith, Ian C.; Speas, Christopher S.

Abstract not provided.

Self-generated surface magnetic fields inhibit laser-driven sheath acceleration of high-energy protons

Nature Communications

Schwarz, Jens; Rambo, Patrick K.; Nakatsutsumi, M.; Sentoku, Y.; Korzhimanov, A.; Chen, S.N.; Buffechoux, S.; Kon, A.; Atherton, B.; Audebert, P.; Geissel, Matthias; Hurd, L.; Kimmel, Mark; Schollmeier, Marius; Starodubtsev, M.; Gremillet, L.; Kodama, R.; Fuchs, J.

High-intensity lasers interacting with solid foils produce copious numbers of relativistic electrons, which in turn create strong sheath electric fields around the target. The proton beams accelerated in such fields have remarkable properties, enabling ultrafast radiography of plasma phenomena or isochoric heating of dense materials. In view of longer-term multidisciplinary purposes (e.g., spallation neutron sources or cancer therapy), the current challenge is to achieve proton energies well in excess of 100 MeV, which is commonly thought to be possible by raising the on-target laser intensity. Here we present experimental and numerical results demonstrating that magnetostatic fields self-generated on the target surface may pose a fundamental limit to sheath-driven ion acceleration for high enough laser intensities. Those fields can be strong enough (~105 T at laser intensities ~1021 W cm-2) to magnetize the sheath electrons and deflect protons off the accelerating region, hence degrading the maximum energy the latter can acquire.

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Enhancing performance of magnetized liner inertial fusion at the Z facility

Physics of Plasmas

Slutz, Stephen A.; Gomez, Matthew R.; Hansen, Stephanie B.; Harding, Eric H.; Hutsel, Brian T.; Knapp, P.F.; Lamppa, Derek C.; Awe, Thomas J.; Ampleford, David J.; Bliss, David E.; Chandler, Gordon A.; Cuneo, Michael E.; Geissel, Matthias; Glinsky, Michael E.; Hahn, Kelly D.; Harvey-Thompson, Adam J.; Hess, Mark H.; Jennings, Christopher A.; Jones, Brent M.; Laity, George R.; Martin, Matthew R.; Peterson, K.J.; Porter, John L.; Rambo, Patrick K.; Rochau, G.A.; Rovang, Dean C.; Ruiz, Carlos L.; Savage, Mark E.; Schwarz, Jens; Schmit, Paul; Shipley, Gabriel A.; Sinars, Daniel; Smith, Ian C.; Stygar, William; Vesey, Roger A.; Weis, Matthew R.

The Magnetized Liner Inertial Fusion concept (MagLIF) [Slutz et al., Phys. Plasmas 17, 056303 (2010)] is being studied on the Z facility at Sandia National Laboratories. Neutron yields greater than 1012 have been achieved with a drive current in the range of 17-18 MA and pure deuterium fuel [Gomez et al., Phys. Rev. Lett. 113, 155003 (2014)]. We show that 2D simulated yields are about twice the best yields obtained on Z and that a likely cause of this difference is the mix of material into the fuel. Mitigation strategies are presented. Previous numerical studies indicate that much larger yields (10-1000 MJ) should be possible with pulsed power machines producing larger drive currents (45-60 MA) than can be produced by the Z machine [Slutz et al., Phys. Plasmas 23, 022702 (2016)]. To test the accuracy of these 2D simulations, we present modifications to MagLIF experiments using the existing Z facility, for which 2D simulations predict a 100-fold enhancement of MagLIF fusion yields and considerable increases in burn temperatures. Experimental verification of these predictions would increase the credibility of predictions at higher drive currents.

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Diagnosing and mitigating laser preheat induced mix in MagLIF

Physics of Plasmas

Harvey-Thompson, Adam J.; Weis, Matthew R.; Harding, Eric H.; Geissel, Matthias; Ampleford, David J.; Chandler, Gordon A.; Fein, Jeffrey R.; Glinsky, Michael E.; Gomez, Matthew R.; Hahn, K.D.; Hansen, Stephanie B.; Jennings, Christopher A.; Knapp, P.F.; Paguio, R.R.; Perea, Lawrence; Peterson, K.J.; Porter, John L.; Rambo, Patrick K.; Robertson, G.K.; Rochau, G.A.; Ruiz, Daniel E.; Schwarz, Jens; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, G.E.; Smith, Ian C.; Speas, Christopher S.; Whittemore, Kelly A.

A series of Magnetized Liner Inertial Fusion (MagLIF) experiments have been conducted in order to investigate the mix introduced from various target surfaces during the laser preheat stage. The material mixing was measured spectroscopically for a variety of preheat protocols by employing mid-atomic number surface coatings applied to different regions of the MagLIF target. The data show that the material from the top cushion region of the target can be mixed into the fuel during preheat. For some preheat protocols, our experiments show that the laser-entrance-hole (LEH) foil used to contain the fuel can be transported into the fuel a significant fraction of the stagnation length and degrade the target performance. Preheat protocols using pulse shapes of a few-ns duration result in the observable LEH foil mix both with and without phase-plate beam smoothing. In order to reduce this material mixing, a new capability was developed to allow for a low energy (∼20 J) laser pre-pulse to be delivered early in time (-20 ns) before the main laser pulse (∼1.5 kJ). In experiments, this preheat protocol showed no indications of the LEH foil mix. The experimental results are broadly in agreement with pre-shot two-dimensional HYDRA simulations that helped motivate the development of the early pre-pulse capability.

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Uncovering signatures of preheat performance in MagLIF experiments using stimulated Raman and Brillouin backscatter spectra

Fein, Jeffrey R.; Bliss, David E.; Geissel, Matthias; Harvey-Thompson, Adam J.; Awe, Thomas J.; Ampleford, David J.; Glinsky, Michael E.; Foulk, James W.; Harding, Eric H.; Macrunnels, Keven A.; Patel, Sonal G.; Ruiz, Daniel E.; Scoglietti, Daniel J.; Smith, Ian C.; Weis, Matthew R.; Peterson, Kara J.

Abstract not provided.

Pushing Laser Pre-Heat in MagLIF

Geissel, Matthias; Harvey-Thompson, Adam J.; Fein, Jeffrey R.; Woodbury, Daniel; Davis, Daniel R.; Bliss, David E.; Scoglietti, Daniel J.; Gomez, Matthew R.; Ampleford, David J.; Awe, Thomas J.; Colombo, Anthony; Weis, Matthew R.; Jennings, Christopher A.; Glinsky, Michael E.; Slutz, Stephen A.; Ruiz, Daniel E.; Peterson, K.J.; Smith, Ian C.; Shores, Jonathon; Kimmel, Mark; Rambo, Patrick K.; Schwarz, Jens; Galloway, Benjamin R.; Speas, Christopher S.; Porter, John L.

Abstract not provided.

Laser entrance window transmission and reflection measurements for preheating in magnetized liner inertial fusion

Physics of Plasmas

Davies, J.R.; Bahr, R.E.; Barnak, D.H.; Betti, R.; Bonino, M.J.; Campbell, E.M.; Hansen, E.C.; Harding, D.R.; Peebles, J.L.; Sefkow, A.B.; Seka, W.; Chang, P.Y.; Geissel, Matthias; Harvey-Thompson, Adam J.

Laser-driven magnetized liner inertial fusion (MagLIF) is being developed on the OMEGA Laser System to study scaling. MagLIF targets require a preheat laser entrance window that can hold the gas in the target yet allow sufficient laser energy to enter the gas. For OMEGA MagLIF targets, 1.8-μm-thick polyimide foils were found to be sufficient to hold a fuel pressure of up to 14 atm. Transmission and reflection of an OMEGA beam incident on such foils were measured with a calorimeter and time-resolved spectrometers for 2.5-ns square-shaped pulses, with energies from 60 to 200 J, focused to intensities from 0.65 to 2.2 × 1014 W/cm2. The laser energy transmitted in every case exceeded that required to achieve the goal of preheating the gas to 100 eV. The time-resolved measurements showed an initial period with very low, decreasing transmission, the duration of which decreased with increasing intensity, followed by a rapid transition to full transmission, accompanied by brief sidescattering of the transmitted light with a significant red shift. Reflection was always negligible. Two-dimensional radiation-hydrodynamic simulations, using 3-D ray tracing with inverse bremsstrahlung energy deposition, did not capture the rapid transition to full transmission, showing instead a slow increase in transmission, without significant sidescatter or red shift. We propose that full transmission is achieved by self-focusing followed by ponderomotive blowout of the plasma.

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Minimizing scatter-losses during pre-heat for magneto-inertial fusion targets

Physics of Plasmas

Geissel, Matthias; Harvey-Thompson, Adam J.; Awe, Thomas J.; Bliss, David E.; Glinsky, Michael E.; Gomez, Matthew R.; Harding, Eric H.; Hansen, Stephanie B.; Speas, Christopher S.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Peterson, K.J.; Schollmeier, Marius; Schwarz, Jens; Shores, Jonathon; Slutz, Stephen A.; Sinars, Daniel; Smith, Ian C.; Vesey, Roger A.; Weis, Matthew R.; Porter, John L.

The size, temporal and spatial shape, and energy content of a laser pulse for the pre-heat phase of magneto-inertial fusion affect the ability to penetrate the window of the laser-entrance-hole and to heat the fuel behind it. High laser intensities and dense targets are subject to laser-plasma-instabilities (LPI), which can lead to an effective loss of pre-heat energy or to pronounced heating of areas that should stay unexposed. While this problem has been the subject of many studies over the last decades, the investigated parameters were typically geared towards traditional laser driven Inertial Confinement Fusion (ICF) with densities either at 10% and above or at 1% and below the laser's critical density, electron temperatures of 3-5 keV, and laser powers near (or in excess of) 1 × 1015 W/cm2. In contrast, Magnetized Liner Inertial Fusion (MagLIF) [Slutz et al., Phys. Plasmas 17, 056303 (2010) and Slutz and Vesey, Phys. Rev. Lett. 108, 025003 (2012)] currently operates at 5% of the laser's critical density using much thicker windows (1.5-3.5 μm) than the sub-micron thick windows of traditional ICF hohlraum targets. This article describes the Pecos target area at Sandia National Laboratories using the Z-Beamlet Laser Facility [Rambo et al., Appl. Opt. 44(12), 2421 (2005)] as a platform to study laser induced pre-heat for magneto-inertial fusion targets, and the related progress for Sandia's MagLIF program. Forward and backward scattered light were measured and minimized at larger spatial scales with lower densities, temperatures, and powers compared to LPI studies available in literature.

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Pre-Heat Optimization for Magnetized Liner Inertial Fusion at Sandia

Geissel, Matthias; Harvey-Thompson, Adam J.; Awe, Thomas J.; Bliss, David E.; Glinsky, Michael E.; Gomez, Matthew R.; Harding, Eric H.; Hansen, Stephanie B.; Jennings, Christopher A.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Peterson, K.J.; Schollmeier, Marius; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, Ian C.; Speas, Christopher S.; Vesey, Roger A.; Weis, Matthew R.; Porter, John L.

Abstract not provided.

MagLIF Pre-Heat Optimization on the PECOS Surrogacy Platform

Geissel, Matthias; Harvey-Thompson, Adam J.; Awe, Thomas J.; Ampleford, David J.; Bliss, David E.; Glinsky, Michael E.; Gomez, Matthew R.; Harding, Eric H.; Hansen, Stephanie B.; Jennings, Christopher A.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Peterson, K.J.; Rambo, Patrick K.; Rochau, G.A.; Schollmeier, Marius; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, Ian C.; Speas, Christopher S.; Vesey, Roger A.; Weis, Matthew R.; Porter, John L.

Abstract not provided.

A Path to Increased Performance in Magnetized Liner Inertial Fusion

Gomez, Matthew R.; Slutz, Stephen A.; Jennings, Christopher A.; Harvey-Thompson, Adam J.; Weis, Matthew R.; Lamppa, Derek C.; Hutsel, Brian T.; Ampleford, David J.; Awe, Thomas J.; Bliss, David E.; Chandler, Gordon A.; Geissel, Matthias; Hahn, Kelly; Hansen, Stephanie B.; Harding, Eric H.; Hess, Mark H.; Knapp, P.F.; Laity, George R.; Martin, Matthew R.; Nagayama, Taisuke; Rovang, Dean C.; Ruiz, Carlos L.; Savage, Mark E.; Schmit, Paul; Schwarz, Jens; Smith, Ian C.; Vesey, Roger A.; Yu, Edmund; Cuneo, Michael E.; Jones, Brent M.; Peterson, K.J.; Porter, John L.; Rochau, G.A.; Sinars, Daniel; Stygar, William A.

Abstract not provided.

Progress in Preconditioning MagLIF fuel and its Impact on Performance

Peterson, K.J.; Harvey-Thompson, Adam J.; Awe, Thomas J.; Bliss, David E.; Geissel, Matthias; Glinsky, Michael E.; Gomez, Matthew R.; Harding, Eric H.; Hansen, Stephanie B.; Jennings, Christopher A.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Schollmeier, Marius; Schwarz, Jens; Sefkow, Adam B.; Shores, Jonathon; Slutz, Stephen A.; Sinars, Daniel; Smith, Ian C.; Speas, Christopher S.; Vesey, Roger A.; Weis, Matthew R.; Porter, John L.

Abstract not provided.

Pre-Heat Optimization for Magnetized Liner Inertial Fusion at Sandia

Geissel, Matthias; Harvey-Thompson, Adam J.; Awe, Thomas J.; Bliss, David E.; Glinsky, Michael E.; Gomez, Matthew R.; Harding, Eric H.; Hansen, Stephanie B.; Jennings, Christopher A.; Kimmel, Mark; Knapp, P.F.; Peterson, K.J.; Schollmeier, Marius; Schwarz, Jens; Shores, Jonathon; Slutz, Stephen A.; Sinars, Daniel; Smith, Ian C.; Speas, Christopher S.; Vesey, Roger A.; Weis, Matthew R.; Porter, John L.

Abstract not provided.

Developing a Pre-Heat Platform for MagLIF with Z-Beamlet

Geissel, Matthias; Awe, Thomas J.; Bliss, David E.; Campbell, Edward M.; Gomez, Matthew R.; Glinsky, Michael E.; Harding, Eric H.; Harvey-Thompson, Adam J.; Hansen, Stephanie B.; Jennings, Christopher A.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Peterson, K.J.; Schollmeier, Marius; Schwarz, Jens; Sefkow, Adam B.; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, Ian C.; Speas, Christopher S.; Vesey, Roger A.; Porter, John L.; Rochau, G.A.

Abstract not provided.

Investigating Laser Preheat and Applied Magnetic Fields Relevant to the MagLIF Fusion Scheme

Harvey-Thompson, Adam J.; Geissel, Matthias; Sefkow, Adam B.; Nagayama, Taisuke

The MAGnetized Liner Inertial Fusion (MagLIF) scheme has achieved thermonuclear fusion yields on the Z Facility by imploding a cylindrical liner filled with D2 fuel that is preheated with a multi-kJ laser and pre-magnetized with an axial Bz=10 T magnetic field. Preheating (Te = 100-200 eV) and pre-magnetizing (10-30 T) the fuel serves to reduce the implosion velocity required to achieve multi-keV fusion-relevant temperatures at stagnation with a modest radial convergence. The challenge of fuel preheat in MagLIF is to deposit multiple-kJ of energy into the underdense (ne/nc<0.1) fuel over ~10 mm target length efficiently and without introducing contaminants. Once the fuel is heated the applied axial magnetic field (ωceτe ~ 10) needs to suppress electron thermal conduction sufficiently to prevent unacceptable heat losses to the liner walls. In this LDRD we investigated laser energy deposition at two facilities: The OMEGA-EP laser at the Laboratory for Laser Energetics and the Z-beamlet laser at Sandia National Labs utilizing the PECOS chamber. Multiple experiments were carried out investigating laser transmission through LEH foils, laser heating of underdense gasses and the effects of magnetization on laser preheat. The studies find that magneto-hydrodynamic simulations are able to reproduce energy deposition at MagLIF-like conditions but that at the intensities currently used to preheat MagLIF significant laser plasma instabilities (LPI) occur which partly explain the inability of codes to reproduce previous MagLIF preheat studies. The experiments find that reducing the intensity and smoothing the beam dramatically reduces the amount of stimulated Brillouin backscatter and produces deposition profiles more similar to those produced in simulations. The experiments have provided a large and varied dataset that can be compared to simulations. As part of the LDRD new experimental capabilities have also been developed that will be used to design future MagLIF integrated experiments and investigate fuel magnetization.

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Overview of Neutron diagnostic measurements for MagLIF Experiments on the Z Accelerator

Hahn, Kelly; Chandler, Gordon A.; Ruiz, Carlos L.; Cooper, Gary; Gomez, Matthew R.; Slutz, Stephen A.; Sefkow, Adam B.; Sinars, Daniel; Hansen, Stephanie B.; Knapp, P.F.; Schmit, Paul; Harding, Eric H.; Jennings, Christopher A.; Awe, Thomas J.; Geissel, Matthias; Rovang, Dean C.; Torres, Jose; Bur, James A.; Cuneo, Michael E.; Glebov, V.Y.; Harvey-Thompson, Adam J.; Hess, Mark H.; Johns, Owen; Jones, Brent M.; Lamppa, Derek C.; Lash, Joel S.; Martin, Matthew R.; Mcbride, Ryan; Peterson, K.J.; Porter, John L.; Reneker, Joseph; Robertson, G.K.; Rochau, G.A.; Savage, Mark E.; Smith, Ian C.; Styron, Jedediah D.; Vesey, Roger A.

Abstract not provided.

DIAGNOSING MAGNETIZED LINER INERTIAL FUSION EXPERIMENTS USING NEUTRON DIAGNOSTICS ON THE Z ACCELERATOR

Hahn, Kelly; Chandler, Gordon A.; Ruiz, Carlos L.; Cooper, Gary; Gomez, Matthew R.; Slutz, Stephen A.; Sefkow, Adam B.; Sinars, Daniel; Hansen, Stephanie B.; Knapp, P.F.; Schmit, Paul; Harding, Eric H.; Jennings, Christopher A.; Awe, Thomas J.; Geissel, Matthias; Rovang, Dean C.; Torres, Jose; Bur, James A.; Cuneo, Michael E.; Glebov, V.Y.; Harvey-Thompson, Adam J.; Hess, Mark H.; Johns, Owen; Jones, Brent M.; Lamppa, Derek C.; Lash, Joel S.; Martin, Matthew R.; Mcbride, Ryan; Peterson, K.J.; Porter, John L.; Reneker, Joseph; Robertson, G.K.; Rochau, G.A.; Savage, Mark E.; Smith, Ian C.; Styron, Jedediah D.; Vesey, Roger A.

Abstract not provided.

Fusion-neutron measurements for magnetized liner inertial fusion experiments on the Z accelerator

Journal of Physics: Conference Series

Hahn, Kelly; Chandler, Gordon A.; Ruiz, Carlos L.; Cooper, Gary; Gomez, Matthew R.; Slutz, Stephen A.; Sefkow, Adam B.; Sinars, Daniel; Hansen, Stephanie B.; Knapp, P.F.; Schmit, Paul; Harding, Eric H.; Jennings, Christopher A.; Awe, Thomas J.; Geissel, Matthias; Rovang, Dean C.; Torres, Jose; Bur, James A.; Cuneo, Michael E.; Glebov, V.Y.; Harvey-Thompson, Adam J.; Herrman, M.C.; Hess, Mark H.; Johns, Owen; Jones, Brent M.; Lamppa, Derek C.; Lash, Joel S.; Martin, Matthew R.; Mcbride, Ryan; Peterson, K.J.; Porter, John L.; Reneker, Joseph; Robertson, G.K.; Rochau, G.A.; Savage, Mark E.; Smith, Ian C.; Styron, Jedediah D.; Vesey, Roger A.

Several magnetized liner inertial fusion (MagLIF) experiments have been conducted on the Z accelerator at Sandia National Laboratories since late 2013. Measurements of the primary DD (2.45 MeV) neutrons for these experiments suggest that the neutron production is thermonuclear. Primary DD yields up to 3e12 with ion temperatures ∼2-3 keV have been achieved. Measurements of the secondary DT (14 MeV) neutrons indicate that the fuel is significantly magnetized. Measurements of down-scattered neutrons from the beryllium liner suggest ρRliner∼1g/cm2. Neutron bang times, estimated from neutron time-of-flight (nTOF) measurements, coincide with peak x-ray production. Plans to improve and expand the Z neutron diagnostic suite include neutron burn-history diagnostics, increased sensitivity and higher precision nTOF detectors, and neutron recoil-based yield and spectral measurements.

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Nonlinear Laser-Plasma Interaction in Magnetized Liner Inertial Fusion

Proceedings of SPIE - The International Society for Optical Engineering

Geissel, Matthias; Awe, Thomas J.; Bliss, David E.; Campbell, Edward M.; Gomez, Matthew R.; Harding, Eric H.; Harvey-Thompson, Adam J.; Hansen, Stephanie B.; Jennings, Christopher A.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Mcbride, Ryan; Peterson, K.J.; Schollmeier, Marius; Scoglietti, Daniel J.; Sefkow, Adam B.; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, Ian C.; Speas, Christopher S.; Vesey, Roger A.; Porter, John L.

Sandia National Laboratories is pursuing a variation of Magneto-Inertial Fusion called Magnetized Liner Inertial Fusion, or MagLIF. The MagLIF approach requires magnetization of the deuterium fuel, which is accomplished by an initial external B-Field and laser-driven pre-heat. Although magnetization is crucial to the concept, it is challenging to couple sufficient energy to the fuel, since laser-plasma instabilities exist, and a compromise between laser spot size, laser entrance window thickness, and fuel density must be found. Ultimately, nonlinear processes in laser plasma interaction, or laser-plasma instabilities (LPI), complicate the deposition of laser energy by enhanced absorption, backscatter, filamentation and beam-spray. We determine and discuss key LPI processes and mitigation methods. Results with and without improvement measures are presented.

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Demonstration of space-resolved x-ray Thomson scattering capability for warm dense matter experiments on the Z accelerator

High Energy Density Physics

Ao, Tommy; Harding, Eric H.; Bailey, James E.; Lemke, Raymond W.; Desjarlais, Michael P.; Hansen, Stephanie B.; Smith, Ian C.; Geissel, Matthias; Maurer, Andrew J.; Reneker, Joseph; Romero, Dustin H.; Sinars, Daniel; Rochau, G.A.; Foulk, James W.

Experiments on the Sandia Z pulsed-power accelerator have demonstrated the ability to produce warm dense matter (WDM) states with unprecedented uniformity, duration, and size, which are ideal for investigations of fundamental WDM properties. For the first time, space-resolved x-ray Thomson scattering (XRTS) spectra from shocked carbon foams were recorded on Z. The large (>20 MA) electrical current produced by Z was used to launch Al flyer plates up to 25 km/s. The impact of the flyer plate on a CH2 foam target produced a shocked state with an estimated pressure of 0.75 Mbar, density of 0.52 g/cm3, and temperature of 4.3 eV. Both unshocked and shocked portions of the foam target were probed with 6.2 keV x-rays produced by focusing the Z-Beamlet laser onto a nearby Mn foil. The data are composed of three spatially distinct spectra that were simultaneously captured with a single spectrometer with high spectral (4.8 eV) and spatial (190 μm) resolutions. Detailed spectral information from three target locations is provided simultaneously: the incident x-ray source, the scattered signal from unshocked foam, and the scattered signal from shocked foam.

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Recent laser upgrades at Sandia's Z-backlighter facility in order to accommodate new requirements for magnetized liner inertial fusion on the Z-machine

High Power Laser Science and Engineering

Schwarz, Jens; Rambo, Patrick K.; Armstrong, Darrell J.; Schollmeier, Marius; Smith, Ian C.; Shores, Jonathon; Geissel, Matthias; Kimmel, Mark; Porter, John L.

The Z-backlighter laser facility primarily consists of two high energy, high-power laser systems. Z-Beamlet laser (ZBL) (Rambo et al., Appl. Opt. 44, 2421 (2005)) is a multi-kJ-class, nanosecond laser operating at 1054 nm which is frequency doubled to 527 nm in order to provide x-ray backlighting of high energy density events on the Z-machine. Z-Petawatt (ZPW) (Schwarz et al., J. Phys.: Conf. Ser. 112, 032020 (2008)) is a petawatt-class system operating at 1054 nm delivering up to 500 J in 500 fs for backlighting and various short-pulse laser experiments (see also Figure 10 for a facility overview). With the development of the magnetized liner inertial fusion (MagLIF) concept on the Z-machine, the primary backlighting missions of ZBL and ZPW have been adjusted accordingly. As a result, we have focused our recent efforts on increasing the output energy of ZBL from 2 to 4 kJ at 527 nm by modifying the fiber front end to now include extra bandwidth (for stimulated Brillouin scattering suppression). The MagLIF concept requires a well-defined/behaved beam for interaction with the pressurized fuel. Hence we have made great efforts to implement an adaptive optics system on ZBL and have explored the use of phase plates. We are also exploring concepts to use ZPW as a backlighter for ZBL driven MagLIF experiments. Alternatively, ZPW could be used as an additional fusion fuel pre-heater or as a temporally flexible high energy pre-pulse. All of these concepts require the ability to operate the ZPW in a nanosecond long-pulse mode, in which the beam can co-propagate with ZBL. Some of the proposed modifications are complete and most of them are well on their way.

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Delivering Kilojoules of Pre-Heat to Fusion Targets in Sandia's Z-Machine

Geissel, Matthias; Awe, Thomas J.; Campbell, E.M.; Gomez, Matthew R.; Harding, Eric H.; Harvey-Thompson, Adam J.; Hansen, Stephanie B.; Jennings, Christopher A.; Kimmel, Mark; Knapp, P.F.; Lewis, Sean M.; Mcbride, Ryan; Peterson, K.J.; Schollmeier, Marius; Sefkow, Adam B.; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, Ian C.; Speas, Christopher S.; Vesey, Roger A.; Porter, John L.

Abstract not provided.

Exploring magnetized liner inertial fusion with a semi-analytic model

Physics of Plasmas

Mcbride, Ryan; Slutz, Stephen A.; Vesey, Roger A.; Gomez, Matthew R.; Sefkow, Adam B.; Hansen, Stephanie B.; Knapp, P.F.; Schmit, Paul; Geissel, Matthias; Harvey-Thompson, Adam J.; Jennings, Christopher A.; Harding, Eric H.; Awe, Thomas J.; Rovang, Dean C.; Hahn, Kelly; Martin, Matthew R.; Cochrane, Kyle; Peterson, K.J.; Rochau, G.A.; Porter, John L.; Stygar, William A.; Campbell, Edward M.; Nakhleh, Charles W.; Herrmann, Mark C.; Cuneo, Michael E.; Sinars, Daniel

In this study, we explore magnetized liner inertial fusion (MagLIF) [S. A. Slutz et al., Phys. Plasmas 17, 056303 (2010)] using a semi-analytic model [R. D. McBride and S. A. Slutz, Phys. Plasmas 22, 052708 (2015)]. Specifically, we present simulation results from this model that: (a) illustrate the parameter space, energetics, and overall system efficiencies of MagLIF; (b) demonstrate the dependence of radiative loss rates on the radial fraction of the fuel that is preheated; (c) explore some of the recent experimental results of the MagLIF program at Sandia National Laboratories [M. R. Gomez et al., Phys. Rev. Lett. 113, 155003 (2014)]; (d) highlight the experimental challenges presently facing the MagLIF program; and (e) demonstrate how increases to the preheat energy, fuel density, axial magnetic field, and drive current could affect future MagLIF performance.

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Results 51–100 of 212
Results 51–100 of 212